A visual interface having a plurality of picture elements disposed on a substrate wherein a viewable display area of the visual interface may be configured by expanding or contracting the substrate in at least one dimension, and a characteristic of the visual interface is controlled based on the configuration of the viewable display area.
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11. A portable electronic device comprising:
a visual interface having a plurality of addressable picture elements disposed on a surface of a substrate,
a viewable display area of the visual interface is configurable by expanding or contracting the substrate in a direction substantially parallel to a surface dimension of the viewable display area to deform the viewable display area,
wherein to change a size of an image, the addressable picture elements expand when the substrate is expanded by stretching an elastic strand and the addressable picture elements contract when the substrate folds or collapses; and
a controller communicably coupled to the visual interface,
the controller configuring a characteristic of the visual interface based on the configuration of the viewable display area.
1. A method in a visual interface having a plurality of picture elements disposed on a substrate, the method comprising:
configuring a viewable display area of the visual interface by expanding or contracting the substrate in at least one dimension,
at least a portion of the viewable display area of the visual interface is deformed, including the plurality of picture elements that comprise an elastic characteristic, wherein the plurality of picture elements expand or contract to change a size of an image when the substrate is expanded by stretching an elastic strand and the picture elements contract when the substrate folds or collapses, and
all picture elements remain viewable despite the contraction or expansion of the substrate; and
controlling a characteristic of the visual interface based on the configuration of the viewable display area by enabling at least some of the picture elements of the viewable display area.
2. The method of
3. The method of
configuring the viewable display area includes changing a size characteristic of the viewable display area by expanding or contracting the substrate,
controlling the characteristic of the visual interface includes controlling a brightness of the visual interface based on the size characteristic of the viewable display area.
4. The method of
configuring the viewable display area includes changing a size characteristic of the viewable display area by expanding or contracting the substrate,
controlling the characteristic of the visual interface includes addressing a group of neighboring picture elements as a single picture element, wherein the number of neighboring picture elements in the group is dependent on the size characteristic of the viewable display area.
5. The method of
6. The method of
configuring the viewable display area includes changing a size characteristic of the viewable display area by expanding or contracting the substrate,
controlling the characteristic of the visual interface includes enabling a greater number of picture elements when the size characteristic is relatively large and enabling a lesser number of picture elements when the size characteristic is relatively small.
7. The method of
detecting the configuration of the viewable display area upon expanding or contracting the substrate in at least one dimension;
controlling the characteristic of the visual interface in response to detecting the configuration of the viewable display area.
8. The method of
9. The method of
10. The method of
12. The device of
13. The device of
14. The device of
15. The device of
the controller controlling the characteristic of the visual interface includes enabling a greater number of picture elements when a size of the viewable display area is relatively large and enabling a lesser number of picture elements when the size of the viewable display area is relatively small.
16. The device of
the controller detecting the configuration of the viewable display area upon expanding or contracting the substrate;
the controller controlling the characteristic of the visual interface in response to detecting the configuration.
17. The device of
18. The device of
19. The device of
20. The device of
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The present disclosure relates generally to visual display technology, and more specifically to controlling characteristics of a visual interface based on a viewable display area configuration thereof.
Portable electronic devices including cellular telephone handsets, personal digital assistants (PDAs), handheld gaming devices, and laptop computers, among other devices, have become increasingly popular, particularly in mobile societies. Consumer demand for portability however is often at odds with a competing desire for large display interfaces, since small devices severely constrain the size of the display that may be incorporated into such devices.
Others have endeavored to address competing demands for small form-factors and large display areas. For example, U.S. Pat. No. 7,095,387 entitled “Display Expansion Method and Apparatus” discloses an expandable display having multiple folding sections in a handheld computing device, wherein the display is expandable upon unfolding the multiple display sections. An alternative embodiment includes a retractable e-paper display screen that is supported by a folding panel that may be expanded. The '387 Patent also teaches reformatting a displayed image based on the configuration of the display to maintain a constant display resolution regardless of the configuration of the display.
The various aspects, features and advantages of the disclosure will become more fully apparent to those having ordinary skill in the art upon careful consideration of the following Detailed Description thereof with the accompanying drawings described below. The drawings may have been simplified for clarity and are not necessarily drawn to scale.
In
In
Generally, the substrate comprises a structure that is configurable between at least two different viewable display area configurations. The viewable display area is a portion of the visual interface or display visible to the user. The viewable display area also has a surface dimension that is defined generally by the pixels disposed on the substrate. In one embodiment, the surface dimension of the display is planar. In other embodiments, however, the surface dimension of the display may be curved, for example, concave or convex. According to one aspect of the disclosure, the size and/or shape of the visual interface and particularly the viewable display area thereof is configurable. In one application, first and second viewable display area configurations of the visual interface have different size viewable display areas. In another application, the first and second viewable display area configurations have different shapes with the same size area. The size and/or shape of the viewable display area may be configured by an application or by the user as discussed more fully below.
In one embodiment, the substrate comprises an elastic component that may be expanded and contracted. In
In a more particular embodiment, the elastic component is the substrate per se. Exemplary elastic materials suitable for forming an elastic substrate include elastic polymers among other natural and synthetic materials having elastic properties. The elastic substrate may also be embodied as an elastic fabric capable of being stretched and contracted to increase and decrease the size and/or shape of the substrate. In these implementations, the elastic substrate expands and contracts parallel to the surface dimension of the viewable display area. In this implementation, the substrate may also be considered to lie within the surface of the viewable display area. In some implementations, the height or vertical dimension of the elastic substrate may have a tendency to decrease as the substrate is stretched. It is also expected that the substrate could be a three dimensional substrate, which will stretch in three dimensions.
In another implementation, the substrate comprises a structure formed of overlapping elements interconnected by an elastic component.
In another embodiment, not illustrated, the substrate structure comprises interleaved or overlapping shingle-like elements interconnected by elastic strands. The shingle-like elements may be formed of an elastic or non-elastic material. The shingle-like elements may be discrete elements or they may be interconnected by a flexible web. In one implementation, the elongated shingle-like elements are interconnected by elastic strands that bias the elements in a partially overlapping collapsed configuration. The elements may be fanned-out to increase the viewable display area by stretching the elastic strands. A single array of overlapping shingle-like elements extending the full length or width of the display and interconnected by elastic strands or other elastic elements could be extended and collapsed in one dimension. An array of overlapping shingle-like elements interconnected by orthogonal elastic strands could be extended and collapsed in two dimensions. The substrate and pixels may also be implemented as e-paper having an elastic property, or by islands of e-paper disposed on an elastic substrate. In one embodiment, e-ink is deposited on a conductive elastomeric material.
In one embodiment, the picture elements are embodied as light emitting diodes (LEDs) disposed on the substrate. For example, the LEDs may be fastened to the substrate using a conductive adhesive, or by soldering or by other suitable means. Alternatively, the LEDs may be formed integrally with or on the substrate using printing and/or lithography techniques. Integral implementations of the substrate and the picture elements may be embodied as plastic semiconductors. The pixels could also be implemented with transistors as in a TFT, or with MEMs utilized as shutters or mirrors disposed on an elastic substrate. For example, the pixels 112 in
The picture elements may be electrically interconnected, for example, to an electrical interface or other components by elastic conductors. The elastic conductor may comprise a conductive core and an insulating sheath. The core could be a silver impregnated rubber or some other elastic material with a conductive doping or conductive properties. The insulating sheath could be any compatible elastic material with suitable insulating properties. In one embodiment, the elastic conductor is integrated with the substrate, for example, by weaving it into an elastic fabric or integrating the elastic conductor with a discrete substrate component. In another embodiment, the substrate is woven or otherwise created from elastic strands, at least some of which are conductors, thus forming a stretchable sheet of substrate or an elastic fabric as discussed above. In embodiments where the substrate and the picture elements are integrally formed of an elastic semiconductor, the leads could also be printed using lithographic techniques.
In some embodiments, the plurality of picture elements have an elastic characteristic, wherein the size of each picture element changes in some proportion to the size of the underlying substrate. In
In one embodiment, the configuration of the visual interface may be changed by configuring or re-configuring the adjustable frame. The frame may be configured manually or automatically. In one embodiment, the size and or shape of the frame is changed hydraulically or with servo-motors. The display may be configured automatically based on opening or closing a particular software application. For example, it may be desirable to increase the size of the visual interface when viewing a video clip or image. It may also be desirable to view certain content in a landscape orientation, or to view movie content in a 16:9 display format. The display configuration could be changed to a default configuration upon closing the application, or changed to a default configuration when the device is powered off. Also, the user may be empowered to ultimately control the configuration of the display and may be allowed to override any automatic display configurations. Such control could be exercised by the user at a control interface of the host device.
In another embodiment, the display comprises a material that changes size and/or shape in response to an applied electrical signal. In one embodiment, for example, the substrate includes an electro-active polymer (EAP). In one application, the display size and/or shape of the display is changed by applying power to the EAP. An EAP material may also be used to detect changes in the size and/or shape of the substrate. For example, one or more EAP strips extending across the substrate may be used to detect changes in the configuration of the substrate, since an electrical characteristic of the EAP changes when the EAP shape is changed. In another embodiment, the display includes a memory shape plastic that changes size and/or shape upon application of voltage thereto. In another application, changes in the shape and/or size of the display induced by an external force, for example, by a configurable frame or by a user, may be detected by monitoring electrical changes in the EAP. Detection of changes in the configuration of the display may be used by the display controller to control the display, for example, to address the pixels, as discussed below.
According to another aspect of the disclosure, the controller controls one or more characteristics of the visual interface based on the configuration of the viewable display area, for example, based on the shape and/or size of the viewable display area. In one embodiment, the processor includes a pixel addressing module 920 that addresses pixels based on the configuration of the visual interface and particularly based on the configuration of the viewable display area thereof. In one particular implementation, the controller enables a greater number of picture elements when the size characteristic of the viewable display area is relatively large and the controller enables a lesser number of picture elements when the size characteristic is relatively small.
In another implementation, the controller addresses a group of neighboring picture elements as a single picture element, wherein the number of neighboring picture elements in the group are dependent on the size of the viewable display area. For example, the controller may address a lesser number of neighboring picture elements in the group when the size characteristic of the display is smaller, and the controller may address a greater number of neighboring picture elements in the group when the size characteristic of the display is greater. Such an addressing scheme may provide uniform pixel density when the viewable display area is configured between large and small areas. For example, some pixels may be turned off, or not addressed, when the pixel density is relatively high.
In another embodiment, the processor includes a brightness control module 922 that controls the brightness of the display. In one implementation, the brightness of the visual interface is controlled based on the size characteristic of the viewable display area. For example, the brightness of the pixels may be increased when the visual interface has a relatively large size configuration relative to the brightness when the display has a relatively small size. Such a brightness control scheme could be used to maintain constant lumens per unit area of the display as the viewable display area changes from one configuration to another.
In another embodiment, the processor includes a detection module 924 capable of detecting a change in the configuration of the viewable display area. The controller may then control another characteristic, for example, the brightness or addressing scheme, of the visual interface in response to detecting the configuration of the viewable display area. In one embodiment, the detection module receives inputs from one or more sensors, for example, sensors that detect changes in the size or configuration of an adjustable frame that captures the visual interface. In another embodiment, the detection module detects the configuration of the viewable display area by detecting a change in an electrical property of the substrate, for example, a change in the electrical property of the EAP based substrate.
In
While the present disclosure and the best modes thereof have been described in a manner establishing possession and enabling those of ordinary skill to make and use the same, it will be understood and appreciated that there are equivalents to the exemplary embodiments disclosed herein and that modifications and variations may be made thereto without departing from the scope and spirit of the inventions, which are to be limited not by the exemplary embodiments but by the appended claims.
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